[Technical Field]
Mutual citation with related applications
[0002] The present invention relates to a minute cutting apparatus for a super absorbent
polymer hydrogel using a pump, which uniformly cuts the hydrogel.
[Background Art]
[0003] A super absorbent polymer (SAP) is a synthetic polymer material with a function of
being capable of absorbing moisture of 500 to 1000 times its own weight, and is referred
to as a super absorbency material (SAM), an absorbent gel material (AGM), or the like
by each developer. The above-described super absorbent polymer has begun to be put
into practical use as a sanitary product, and is currently widely used as a material
such as a soil repair agent for gardening, a water supply material for civil works
or construction, a sheet for seedlings, a freshness maintenance agent in the food
distribution field, and a material for a poultice in addition to hygiene products
such as paper diapers for children.
[0004] A hydrogel or hydrogel polymer obtained through the polymerization reaction as described
above is generally pulverized after a drying process and then is commercially available
as a powdery product is known. It is important to increase the surface area of the
hydrogel polymer as much as possible in order to efficiently perform the drying step.
Accordingly, a method of increasing a surface area of the hydrogel polymer to be dried
by simply pulverizing the hydrogel polymer that is polymerized through thermal polymerization
or photopolymerization may be considered in order to increase the surface area of
the hydrogel polymer before the drying process as much as possible. A process of first
pulverizing the hydrogel polymer after polymerization has been disclosed in order
to increase the surface area of the hydrogel polymer as described above.
[0005] A chopper is mainly used in the first pulverizing process of the hydrogel.
[0006] Such a chopper includes a screw for moving the hydrogel, a barrel including a spiral,
a cutter blade for cutting the hydrogel, and a perforated plate from which the cut
hydrogel is discharged.
[0007] In such a conventional chopper, a moving direction of hydrogel particles injected
into a barrel and a screw is horizontal. Accordingly, a pressure applied to the hydrogel
particles at the position where a perforated plate is positioned is not uniform, and
a working pressure at a lower position of the barrel is greater than that at an upper
portion thereof, so that uniform cutting is not performed in the perforated plate.
[0008] As described above, when sizes of the minutely cut particles of the hydrogel are
not uniform, non-uniform drying may occur for each particle during a drying process
of the hydrogel, resulting in excessive drying or under-drying.
[0009] Herein, the excessively dried product of the hydrogel may generate a large amount
of fine powder in a preparing process of the super absorbent polymer, thereby causing
a problem in the preparing process. In addition, the under-dried product of the hydrogel
has a problem in that it is difficult to prepare a smooth super absorbent polymer
in processes such as pulverization or classification as well as physical properties
of the prepared super absorbent polymer.
[Disclosure]
[Technical Problem]
[0010] An embodiment of the present invention has been made in an effort to provide a minute
cutting apparatus for a super absorbent polymer hydrogel using a pump, that is capable
of uniform cutting of the hydrogel, thereby improving manufacturing quality of the
super absorbent polymer.
[Technical Solution]
[0011] An embodiment of the present invention provides a minute cutting apparatus for a
super absorbent polymer hydrogel using a pump, including: a barrel body in which a
transfer space through which the hydrogel is transferred is formed; a pumping unit
installed in the barrel body to supply a pressing force to the transfer space, a rotation
shaft rotatably installed in the transfer space of the barrel body; a driving motor
configured to provide a rotational driving force to the rotation shaft; a cutter member
installed on the rotation shaft to pulverize the hydrogel transferred by the pressing
force in the transfer space; and a perforated plate installed in the barrel body to
discharge the hydrogel pulverized by the cutter member to an outside of the barrel
body.
[0012] The barrel body may have a transfer space in which the hydrogel is transferred, and
the pumped pressing force may be supplied to an inside of the transfer space by being
connected to the pumping unit at an upper portion thereof.
[0013] The pumping unit may include: a connection passage installed on an upper portion
of the barrel body to be in communication with the transfer space; a body portion
fixedly installed in the connection passage; and a spiral rotor portion rotatably
installed inside the body portion to provide a pressing force to the connection passage.
[0014] An injection hopper into which the hydrogel is injected may be installed at an upper
portion of the body portion.
[0015] A plurality of cutter members and a plurality of perforated plates may be continuously
installed on the rotation shaft.
[0016] A display window capable of checking an inside may be installed in the connection
passage.
[0017] The minute cutting apparatus may further include a pressure sensor installed in the
connection passage to sense whether or not an internal pressure is within a predetermined
pressure range.
[Advantageous Effects]
[0018] According to an embodiment of the present invention, the hydrogel may be pressed
against the side surface of the perforated plate while being filled in an entirely
uniform state in the inner space of the barrel body by the pumping force of the pump
unit. Accordingly, the hydrogel is uniformly pressed over an entire side area of the
perforated plate, and thus the hydrogel may be cut in a uniformly pressed state, thereby
improving preparing quality of the super absorbent polymer.
[Description of the Drawings]
[0019]
FIG. 1 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a first embodiment of
the present invention.
FIG. 2 illustrates a schematic side view showing the minute cutting apparatus of FIG.
1.
FIG. 3 illustrates a schematic exploded side view of main parts showing the minute
cutting apparatus of FIG. 2.
FIG. 4 illustrates a schematic exploded side view of main parts showing a minute cutting
apparatus for a super absorbent polymer hydrogel using a pump according to a second
embodiment of the present invention.
FIG. 5 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a third embodiment of
the present invention.
FIG. 6 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a fourth embodiment of
the present invention.
FIG. 7 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a fifth embodiment of
the present invention.
[Mode for Invention]
[0020] Hereinafter, the present invention will be described more fully with reference to
the accompanying drawings, in which embodiments of the invention are shown. As those
skilled in the art would realize, the described embodiments may be modified in various
different ways, all without departing from the scope of the present invention. The
drawings and description are to be regarded as illustrative in nature and not restrictive.
Like reference numerals designate like elements throughout the specification.
[0021] A minute cutting apparatus for a super absorbent polymer hydrogel using a pump, which
is described below, may be installed to improve physical properties by more precisely
forming the super absorbent polymer into a particle shape. This will be described
in detail below with reference to the drawings.
[0022] FIG. 1 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a first embodiment of
the present invention, FIG. 2 illustrates a schematic side view showing the minute
cutting apparatus of FIG. 1, and FIG. 3 illustrates a schematic exploded side view
of main parts showing the minute cutting apparatus of FIG. 2.
[0023] As illustrated in FIG. 1 to FIG. 3, according to the first embodiment of the present
invention, the minute cutting apparatus for the super absorbent polymer hydrogel using
the pump includes a barrel body 10 in which a transfer space 11 through which the
hydrogel is transferred is formed, a pumping unit 60 installed at an upper portion
of the barrel body 10 to supply a pressing force to the transfer space 11, a rotation
shaft 20 rotatably installed in the conveying space 11 of the barrel body 10, a cutter
member 40 installed on the rotation shaft 20 to pulverize the hydrogel transferred
through the pressing force generated in the transfer space 11, and a perforated plate
50 installed in the barrel body 10 to discharge the hydrogel pulverized by the cutter
member 40 to the outside of the barrel body 10.
[0024] The barrel body 10 may be installed in a state in which the transfer space 11 through
which the hydrogel is transferred is formed along a longitudinal direction and supported
on a bottom surface thereof.
[0025] A support base 13 may protrude from a lower portion of the barrel body 10 for being
stably supported on the bottom surface thereof.
[0026] A discharging part 14, through which hydrogel particles that are pulverized by the
cutter member 40 to be described later and passed through the perforated plate 50
may be discharged, may be formed at a side of the barrel body 10.
[0027] The rotation shaft 20 may be rotatably installed in the inner transfer space 11 of
the barrel body 10.
[0028] The rotation shaft 20 may be installed to be rotatable in the longitudinal direction
of the transfer space 11 inside the barrel body 10. As such, the rotation shaft 20
is installed to provide a rotational force to the cutter member 40 to be described
later to properly pulverize the hydrogel.
[0029] The rotation shaft 20 may be installed to have a first end thereof connected to a
driving shaft of a driving motor 30 so as to be rotatable in one direction or in a
reverse direction inside the barrel body 10.
[0030] The driving motor 30 is installed at one side of the barrel body 10 in a state in
which the driving shaft is connected to a first end of the rotation shaft 20, and
thus a rotational driving force may be provided such that the rotation shaft 20 rotates
at an appropriate rotational speed in one direction or in a reverse direction depending
on an amount of the hydrogel injected into the barrel body 10.
[0031] Meanwhile, the cutter member 40 may be installed on the rotation shaft 20.
[0032] The cutter member 40, which is rotatably installed at a position of the rotation
shaft 20 corresponding to the discharge part 14 formed on the barrel body 10, may
be installed to properly pulverize the hydrogel transferred from the transfer space
11 of the barrel body 10 by a pressing force 62 of the pumping unit 60.
[0033] The cutter member 40 may be installed to protrude in a circular shape at an end of
the rotation shaft 20, and may be installed to appropriately pulverize the hydrogel
moving in a direction of the discharge part 14 from the inside of the barrel body
10. The cutter member 40 is exemplarily described to be installed in a protruding
state at the end of the rotation shaft 20, but the present invention is not limited
thereto, and a plurality of cutter members 40 may be installed to be spaced apart
from each other at the end of the rotation shaft 20.
[0034] The perforated plate 50 is installed at a position of the barrel body 10 corresponding
to the discharge part 14, and a plurality of cutting holes may be formed therein.
[0035] Accordingly, the hydrogel pulverized by the cutter member 40 is pressed and moved
inside the barrel body 10 by a pressing force generated in the pumping unit 60, thereby
being stably discharged through the cutting holes of the perforated plate 50 to perform
a cutting process.
[0036] Meanwhile, the pumping unit 60 may be installed in the barrel body 10 to provide
a pressing force for transferring the hydrogel.
[0037] The pumping unit 60 includes a connection passage 61 installed at an upper portion
of the barrel body 10 in communication with the transfer space 11, a body portion
63 connected to and fixed to the connection passage 61, and a rotor portion 65 rotatably
installed inside the body portion 63 to provide a pressing force to the connection
passage 61.
[0038] The connection passage 61 may be installed to have a first side connected to the
upper portion of the barrel body 10 and communicates with the transfer space 11, and
a second side thereof connected to the body portion 63.
[0039] The connection passage 61, which is connected to the body portion 63 in a state of
protruding from the upper side of the barrel body 10, may support a state in which
the body portion 63 is installed on an upper side of the barrel body 10.
[0040] The connection passage 61 may be formed of a steel material to support the body portion
63, or may be connected to the body portion 63 while being installed on a support
frame (not illustrated).
[0041] The body portion 63, which is installed at an upper portion of the barrel body 10
in a state of being connected to the connection passage 61, may have an installation
space in which the rotor portion 65 is installed therein. The body portion 63 may
be installed at an upper side of the barrel body 10 in a state of being connected
to the connection passage 61 in various shapes such as a cylindrical shape or a polygonal
shape.
[0042] The connection passage 61 is exemplarily described to be bent to connect the body
portion 63 and the barrel body 10 to each other, but may be formed to have a linear
shape when an installation position of the pumping unit 60 is changed.
[0043] An injection hopper 67 for injecting the hydrogel may be installed at an upper portion
of the body portion 63. The injection hopper 67 is not necessarily limited to being
installed on the upper side of the body portion 63, and may be installed on a side
surface of the body portion 63. In addition, the injection hopper 67 may be installed
at a rear side of the body portion 63 when a position of a pumping motor 64 is changed.
[0044] Accordingly, the hydrogel may be moved through the connection passage 61 depending
on an operation of the rotor portion 65 to be described later to be supplied to the
inside of the barrel body 10 in a state of being supplied to the inside of the body
portion 63 through the injection hopper 67.
[0045] The rotor portion 65, which is installed in the internal installation space of the
body portion 63, may be selectively driven depending on an operation control of a
user, and may be installed to supply a pumping force to the connection passage 61.
[0046] According to the present embodiment, the pumping unit 60 may have the spiral rotor
portion 65 rotatably installed inside the body portion 10, to be applied as a type
of progressive cavity pump that provides a pumping force that exceeds a pressure of
the hydrogel.
[0047] The rotor portion 65 may be rotatably installed inside the body portion 63 by a rotational
force of the pumping motor 64.
[0048] A rotor screw 68 may be installed between the rotor portion 65 and the pumping motor
64.
[0049] The rotor screw 68 which is installed inside the body portion 63 may be installed
inside the body portion 63 at a position where the injection hopper 67 is installed
to transfer a rotational force of the pumping motor 64 to the rotor portion 65. Accordingly,
the hydrogel may be pumped more stably in the pumping unit 60 to be transferred to
the inside of the barrel body 10.
[0050] As described above, the hydrogel may be pulverized by the cutter member 40 in the
state of being supplied through the injection hopper 67 and moved to the inside of
the barrel body 10 by the pumping force of the rotor portion 65.
[0051] Subsequently, the hydrogel is further moved by the pressing force in the transfer
space in the state of being pulverized by the cutter member 40 to be properly cut
while passing through the perforated plate 50. Herein, the hydrogel may be cut while
being pressed by a uniform pressing force on the entire side surface of the perforated
plate 50 by the pumping force of the pumping unit 60 in an operation of being cut
in the perforated plate 50.
[0052] That is, the hydrogel may be pressed on the side surface of the perforated plate
50 in a state of being completely uniformly filled in the inner space of the barrel
body 10 by a pumping pressure of the pumping unit 60. Accordingly, since the hydrogel
is uniformly pressed over an entire side area of the perforated plate 50, the hydrogel
may be cut in a uniformly pressed state, thereby improving preparing quality of the
super absorbent polymer.
[0053] FIG. 4 illustrates a schematic exploded side view of main parts showing a minute
cutting apparatus for a super absorbent polymer hydrogel using a pump according to
a second embodiment of the present invention. The same reference numerals as those
of FIG. 1 to FIG. 3 denote the same or similar members having the same or similar
functions. Hereinafter, detailed descriptions of the same reference numerals will
be omitted.
[0054] As illustrated in FIG. 4, a plurality of cutter members 140 and a plurality of perforated
plates 150 of the minute cutting apparatus 300 for the super absorbent polymer hydrogel
using the pump according to the second embodiment of the present invention may be
continuously installed on the rotation shaft 20.
[0055] Accordingly, it is possible to pulverize the hydrogel by using the cutter members
140 according to a rotational operation of the rotation shaft 20, so that an effective
hydrogel pulverization operation may be performed.
[0056] FIG. 5 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a third embodiment of
the present invention. The same reference numerals as those of FIG. 1 to FIG. 4 denote
the same or similar members having the same or similar functions. Hereinafter, detailed
descriptions of the same reference numerals will be omitted.
[0057] As illustrated in FIG. 5, a display window 210 capable of confirming a connection
passage may be installed in the minute cutting apparatus 300 for the super absorbent
polymer hydrogel using the pump according to the third embodiment of the present invention.
[0058] Accordingly, it is possible to easily check an abnormal closing state due to clogging
of the connection passage 61 and a moving state of the hydrogel, so that quick troubleshooting
may be performed.
[0059] FIG. 6 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a fourth embodiment of
the present invention. The same reference numerals as those of FIG. 1 to FIG. 5 denote
the same or similar members having the same or similar functions. Hereinafter, detailed
descriptions of the same reference numerals will be omitted.
[0060] As illustrated in FIG. 6, a pressure sensor 310 for sensing whether an internal pressure
of the connection passage 61 is within a predetermined pressure range may be installed
in the minute cutting apparatus 400 for the super absorbent polymer hydrogel using
the pump according to the fourth embodiment of the present invention.
[0061] The pressure sensor 310 may be installed to warn a user by recognizing a closed state
such as clogging or a damaged state such as perforation when the internal pressure
of the connection passage 61 is sensed as an abnormal pressure that exceeds a predetermined
pressure. Accordingly, it is possible to quickly troubleshoot an abnormal operation
and extend a service life.
[0062] FIG. 7 illustrates a schematic perspective view of a minute cutting apparatus for
a super absorbent polymer hydrogel using a pump according to a fifth embodiment of
the present invention. The same reference numerals as those of FIG. 1 to FIG. 6 denote
the same or similar members having the same or similar functions. Hereinafter, detailed
descriptions of the same reference numerals will be omitted.
[0063] As illustrated in FIG. 7, a pumping unit 60 of the minute cutting apparatus 500 for
the super absorbent polymer hydrogel using the pump according to the fifth embodiment
of the present invention may be installed at a side surface of the barrel body 10,
and the connection passage 61 may be connected to the side surface of the barrel body
10.
[0064] Accordingly, the hydrogel may be supplied from the side surface of the barrel body
10 to the inside of the barrel body 10. In the present embodiment, the connection
passage 61 is exemplarily described to be connected to the side surface of the barrel
body 10, but it may be connected to a rear position of the barrel body 10 when a position
of the driving motor 30 is changed.
[0065] While this invention has been described in connection with what is presently considered
to be practical embodiments, it is to be understood that the invention is not limited
to the disclosed embodiments, but, on the contrary, is intended to cover various modifications
and equivalent arrangements included within the scope of the appended claims.
[0066] Description of Symbols
10 |
barrel body |
11 |
transfer space |
13 |
support base |
20 |
rotation shaft |
30 |
driving motor |
40, 140 |
cutter member |
50, 150 |
perforated plate |
60 |
pumping unit |
61 |
connection passage |
63 |
body portion |
64 |
pumping motor |
65 |
rotor portion |
67 |
injection hopper |
68 |
rotor screw |
210 |
display window |
310 |
pressure sensor |
1. A minute cutting apparatus for a superabsorbent polymer hydrogel using a pump, comprising:
a barrel body comprising a transfer space through which the hydrogel is transferred;
a pumping unit located in the transfer space of the barrel body that is configured
to supply a pressing force to the transfer space;
a rotation shaft which rotates in the transfer space of the barrel body;
a driving motor configured to provide a rotational driving force to the rotation shaft;
a cutter member attached to the rotation shaft configured to pulverize the hydrogel
transferred by the pressing force in the transfer space; and
a perforated plate located in the transfer space of the barrel body to discharge the
hydrogel pulverized by the cutter member to an outside of the barrel body.
2. A minute cutting apparatus of claim 1, wherein
the pressing force is supplied from an upper portion of the barrel body into inside
of the transfer space.
3. The minute cutting apparatus of claim 2, wherein
the pumping unit includes:
a connection passage connected to an upper portion of the barrel body to be in communication
with the transfer space;
a body portion attached to a side of the connection passage that is an opposite side
of the connection passage to which the barrel body is attached; and
a spiral rotor portion located inside the body portion and configured to provide a
pressing force to the connection passage.
4. The minute cutting apparatus of claim 3, further comprising an injection hopper into
which the hydrogel is injected and located at an upper portion of the body portion.
5. The minute cutting apparatus of claim 1, further comprising a plurality of cutter
members and a plurality of perforated plates located in the transfer space of the
barrel body and attached to the rotation shaft.
6. The minute cutting apparatus of claim 3, further comprising a display window capable
of checking an inside located at the connection passage.
7. The minute cutting apparatus of claim 1, further comprising a pressure sensor located
at the connection passage to check whether or not an internal pressure is within a
predetermined pressure range.